The spaceflight environment exposes biological systems to microgravity and cosmic radiation, which are factors known to induce oxidative stress and neurodegenerative processes. As the central nervous system is highly susceptible to disruptions in redox homeostasis, the development of effective strategies to safeguard astronaut health and cognitive function during extended space missions has become imperative. In this study, we investigate cerium oxide nanoparticles (nanoceria, NC) as an antioxidant agent for human neuron-like cells aboard the International Space Station. Nanoceria demonstrated excellent biocompatibility, strong antioxidant properties, and the ability to stimulate neurite extension under both Earth gravity and simulated microgravity. Following the return of the samples to Earth, transcriptomic analyses revealed that nanoceria effectively counteracted the detrimental transcriptional alterations triggered by spaceflight stressors, thereby maintaining neuronal homeostasis. Importantly, the expression of genes involved in antioxidant defense, mitochondrial activity, and dopamine metabolism remained stable in nanoceria-treated neurons, in contrast to the dysregulation observed in untreated controls. These findings position cerium oxide nanoparticles as promising antioxidant neuroprotectants for long-duration space missions and related neurodegenerative conditions.

Neuroprotective Effects of Cerium Oxide Nanoparticles During Spaceflight

Genchi, Giada Graziana
;
2026-01-01

Abstract

The spaceflight environment exposes biological systems to microgravity and cosmic radiation, which are factors known to induce oxidative stress and neurodegenerative processes. As the central nervous system is highly susceptible to disruptions in redox homeostasis, the development of effective strategies to safeguard astronaut health and cognitive function during extended space missions has become imperative. In this study, we investigate cerium oxide nanoparticles (nanoceria, NC) as an antioxidant agent for human neuron-like cells aboard the International Space Station. Nanoceria demonstrated excellent biocompatibility, strong antioxidant properties, and the ability to stimulate neurite extension under both Earth gravity and simulated microgravity. Following the return of the samples to Earth, transcriptomic analyses revealed that nanoceria effectively counteracted the detrimental transcriptional alterations triggered by spaceflight stressors, thereby maintaining neuronal homeostasis. Importantly, the expression of genes involved in antioxidant defense, mitochondrial activity, and dopamine metabolism remained stable in nanoceria-treated neurons, in contrast to the dysregulation observed in untreated controls. These findings position cerium oxide nanoparticles as promising antioxidant neuroprotectants for long-duration space missions and related neurodegenerative conditions.
File in questo prodotto:
Non ci sono file associati a questo prodotto.

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11586/581720
 Attenzione

Attenzione! I dati visualizzati non sono stati sottoposti a validazione da parte dell'ateneo

Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 0
  • ???jsp.display-item.citation.isi??? ND
social impact